Thermal battery operational condition monitoring and alert system
A method for determining the suitability of a thermal storage medium of a thermal battery based in a locale, the method including predicting a required concentration of the thermal storage medium based on historical temperature data of the locale and predicted temperature data of the locale, wherein the required concentration of the thermal storage medium is predicted based upon a concentration of the thermal storage medium corresponding to the historical temperature data and the predicted temperature data and determining the concentration of the thermal storage medium and comparing the concentration of the thermal storage medium to the required concentration of the thermal storage medium, wherein if the required concentration of the thermal storage medium is higher than the concentration of the thermal storage medium, the thermal storage medium is said to be unsuitable.
The present invention relates to a thermal battery operational condition monitoring and alert system. More specifically, the present invention is directed to a thermal battery operational condition monitoring and alert system for a thermal battery utilizing a glycol-water mixture as its heat transfer medium.
2. Background ArtThe use of glycol-water mixtures in thermal transfer-related applications is not new. For instance, in transportation, glycol-water mixtures are used in radiators for dissipating heat while resisting freezing in cold climates. More recently, an increased number of applications have ventured into heat storage for use in water and space heating. However, such uses are typically not accompanied by maintenance activities to ensure that the glycol-water mixtures are still suitable to perform to their intended thermal transfer duties and more particularly to perform to their intended thermal transfer duties in the uncontrolled or outdoor climate. Leaks and evaporations can occur and can inadvertently affect the amount of a heat transfer mixture that is available for use in its intended purposes. Therefore, maintenance of such mixture is important not only during scheduled maintenance with intervals of months but also maintenance that can be more cost effectively performed during normal operations of the thermal batteries. Many equipment, e.g., refractometers, especially laboratory-grade refractometers are costly to procure and involve one or more manual steps in obtaining the concentration of a substance in a mixture and are therefore impractical for use with applications which require routine, e.g., daily sampling. Further, a refractometer functions according to principles of refractive indices which cause the measurements to be temperature dependent, adding to potential inaccuracies that can arise and also complexities in computing concentrations. Further, a refractometer may not be used for another purpose in a thermal battery system but to provide concentration values of the thermal battery contents, thus requiring this dedicated and additional piece of equipment to be made available which incurs additional costs.
There exists a need for an automated, simple and multi-purpose and cost-effective sensor for detecting the suitability or concentration of a substance of a heat transfer working liquid.
SUMMARY OF THE INVENTIONIn accordance with the present invention, there is provided a method for determining the suitability of a thermal storage medium of a thermal battery based in a locale, the method including:
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- (a) predicting a required concentration of the thermal storage medium based on historical temperature data of the locale and predicted temperature data of the locale, wherein the required concentration of the thermal storage medium is predicted based upon a concentration of the thermal storage medium corresponding to the historical temperature data and the predicted temperature data; and
- (b) determining the concentration of the thermal storage medium and comparing the concentration of the thermal storage medium to the required concentration of the thermal storage medium, wherein if the required concentration of the thermal storage medium is higher than the concentration of the thermal storage medium, the thermal storage medium is the to be unsuitable.
In one embodiment, the thermal storage medium includes glycol. In one embodiment, the predicted temperature data is a part of weather forecast data of the locale. In one embodiment, the predicting step includes resolving the required concentration of the thermal storage medium to be a concentration of the thermal storage medium corresponding to the lower of the historical temperature data and the predicted temperature data. In one embodiment, the determining step includes transmitting a signal of a waveform in a portion of the thermal storage medium; and receiving the signal of the waveform disposed at a pulse width and looking up the concentration of the thermal storage medium on a signal pulse width-thermal storage medium concentration relationship based on the pulse width. In one embodiment, the waveform is a square waveform. In one embodiment, the locale is specified by a zip code.
In accordance with the present invention, there is further provided a method for determining the concentration of a solute in a thermal storage medium, the method including:
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- (a) transmitting a signal of a waveform in a portion of the thermal storage medium; and
- (b) receiving the signal of the waveform disposed at a pulse width and looking up the concentration of the solute in the thermal storage medium based on a signal pulse width-solute concentration in thermal storage medium relationship corresponding to the pulse width.
In one embodiment, the thermal storage medium is a glycol-water mixture. In one embodiment, the signal pulse width-solute concentration in thermal storage medium relationship is established using a method including establishing the signal pulse width-solute concentration in thermal storage medium relationship using at least readings of signal pulse width of at least two different solute concentrations in thermal storage medium. In one embodiment, the waveform is a square waveform. In one embodiment, if the receiving step fails to receive the signal of the waveform within a predetermined amount of time, it is said that there is an insufficient level of the thermal storage medium.
In accordance with the present invention, there is further provided a method for determining a modification of the concentration of a solution in a container to meet a target concentration of the solution in a limited volume of a container, the method including:
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- (a) determining an actual total volume of the solution and a concentration of the solute in the solution;
- (b) determining an additional volume of the solute required to result in a concentration of the solution that is at least at the target concentration;
- (c) determining whether an aggregate of the actual total volume of the solution and the additional volume of the solute required exceeds the limited volume, wherein if the aggregate does not exceed the limited volume, the additional volume of the solute required is determined to be needed to turn the actual total volume of the solution into a solution at the target concentration; and
- (d) if the aggregate exceeds the limited volume, determining a required drain volume from the container and an additional volume of solute required to be added to container to result in a solution at least at the target concentration.
In one embodiment, the method further includes a modification selected from the group consisting of a modification of the required drain volume to one or more times of a fixed volume, a modification of the additional required volume of solute to one or more times of a fixed volume and a combination thereof. In one embodiment, the solute is glycol and the solution is a glycol/water mixture. In one embodiment, the method further includes limiting the target concentration to about 50% solute by volume. In one embodiment, the fixed volume is the volume of a 5-gallon bucket.
An object of the present invention is to provide a method for determining a required concentration of a thermal battery medium and a method for getting the concentration of the thermal battery medium to a required level to ensure that the thermal battery medium will function as intended under severe ambient temperature conditions.
Another object of the present invention is to provide a device suitable not only for determining the concentration of a solute in a solvent but also for determining a liquid level.
Another object of the present invention is to provide a device and method for determining the concentration of a solute in a solvent that is cost effect and one that requires little maintenance in outdoor conditions.
Whereas there may be many embodiments of the present invention, each embodiment may meet one or more of the foregoing recited objects in any combination. It is not intended that each embodiment will necessarily meet each objective. Thus, having broadly outlined the more important features of the present invention in order that the detailed description thereof may be better understood, and that the present contribution to the art may be better appreciated, there are, of course, additional features of the present invention that will be described herein and will form a part of the subject matter of this specification.
In order that the manner in which the above-recited and other advantages and objects of the invention are obtained, a more particular description of the invention briefly described above will be rendered by reference to specific embodiments thereof which are illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the invention and are not therefore to be considered to be limiting of its scope, the invention will be described and explained with additional specificity and detail through the use of the accompanying drawings in which:
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- 2—glycol concentration sensor
- 4—electrodes
- 6—thermal battery
- 8—glycol mixture, e.g., glycol-water mixture
- 10—normal level of glycol-water mixture
- 12—low level of glycol-water mixture
- 14—inlet of glycol-water mixture
- 16—outlet of glycol-water mixture
- 18—vent port of thermal battery
- 20—table showing response times representing pulse widths relative to glycol concentrations in glycol-water mixture
- 22—column representing percentage of water by volume
- 24—column representing percentage of glycol by volume
- 26—column representing pulse widths
- 28—plot representing pulse widths relative to glycol concentrations in glycol-water mixture
- 30—step of transmitting signal of a waveform in medium
- 32—step of receiving signal which traversed through medium
- 34—step of looking up solute concentration using solute concentration vs. pulse width table
- 36—step of predicting required concentration based on historical and predicted temperature data
- 38—step of selecting lower of historical and predicted temperature data
- 40—step of comparing required concentration and actual concentration
- 42—step in which concentration is indicated as unsuitable
- 44—historical temperature data input
- 46—predicted temperature data input
- 48—step of determining actual total volume and concentration of solute and solvent
- 50—step of determining additional volume of solute to result in at least target concentration
- 52—step of determining whether aggregate of actual total volume of solute and solvent and additional volume of required solute exceeds limited volume
- 54—step of indicating that additional required solute is needed to be added to solution
- 56—step of determining required drain volume and required solute volume
- 58—column representing required percentage of glycol
- 60—column representing ambient temperature
- 62—control device
- 64—internet
- 66—fill valve
The present thermal battery operational condition monitoring and alert system of a thermal battery removes the need for multiple devices for detecting various conditions, e.g., low thermal battery content level, a leak condition of the thermal battery, devices or fluid conductors connected to the thermal battery, concentration of solution for determining suitability of the thermal battery content to function as a thermal storage substance and a thermal storage fluid to ensure optimal operating conditions of the thermal battery. As a thermal battery may be disposed outdoors even in a temperate region, an overly low ambient temperature can threaten the proper functioning of the thermal battery as its contents may freeze or become slushy, affecting the ability of the thermal battery to store thermal energy.
The present thermal battery operational condition monitoring and alert system utilizes historical weather conditions of a locale, weather forecast data and the present weather conditions to more optimally anticipate the weather conditions of the locale in order to more accurately determine the suitability of the contents of a thermal storage device to avoid unnecessary use of more glycol than the necessary amount in the thermal storage medium to ensure the mixture does not freeze and can serve properly as a working fluid or a heat transfer fluid.
The present thermal battery operational condition monitoring and alert system utilizes ubiquitous electrodes coupled with signal processing techniques to produce signals corresponding to the lack of detection of a liquid (or a liquid level low condition) and the detection of the liquid at a concentration, therefore making the system less costly to procure or to maintain as the ubiquitous electrodes are generally robust against a wide range of ambient conditions.
DETAILED DESCRIPTION OF A PREFERRED EMBODIMENTThe term “about” is used herein to mean approximately, roughly, around, or in the region of. When the term “about” is used in conjunction with a numerical range, it modifies that range by extending the boundaries above and below the numerical values set forth. In general, the term “about” is used herein to modify a numerical value above and below the stated value by a variance of 20 percent up or down (higher or lower).
It can then be summarized as shown in
The detailed description refers to the accompanying drawings that show, by way of illustration, specific aspects and embodiments in which the present disclosed embodiments may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice aspects of the present invention. Other embodiments may be utilized, and changes may be made without departing from the scope of the disclosed embodiments. The various embodiments can be combined with one or more other embodiments to form new embodiments. The detailed description is, therefore, not to be taken in a limiting sense, and the scope of the present invention is defined only by the appended claims, with the full scope of equivalents to which they may be entitled. It will be appreciated by those of ordinary skill in the art that any arrangement that is calculated to achieve the same purpose may be substituted for the specific embodiments shown. This application is intended to cover any adaptations or variations of embodiments of the present invention. It is to be understood that the above description is intended to be illustrative, and not restrictive, and that the phraseology or terminology employed herein is for the purpose of description and not of limitation. Combinations of the above embodiments and other embodiments will be apparent to those of skill in the art upon studying the above description. The scope of the present disclosed embodiments includes any other applications in which embodiments of the above structures and fabrication methods are used. The scope of the embodiments should be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.
Claims
1. A method for determining the suitability of a thermal storage medium of a thermal battery based in a locale, said method comprising using a control device to:
- (a) predict a required concentration of the thermal storage medium based on historical temperature data of the locale and predicted temperature data of the locale, said predicted temperature data of the locale is a part of weather forecast data of the locale, wherein said required concentration of the thermal storage medium is predicted based upon a concentration of the thermal storage medium corresponding to said historical temperature data and said predicted temperature data;
- (b) determine the concentration of the thermal storage medium and comparing the concentration of the thermal storage medium to said required concentration of the thermal storage medium, wherein if said required concentration of the thermal storage medium is higher than the concentration of the thermal storage medium, the thermal storage medium is indicated by the control device as unsuitable; and
- (c) if the thermal storage medium is indicated by the control device as unsuitable, correct the concentration of the thermal storage medium to at least said required concentration of the thermal storage medium.
2. The method of claim 1, wherein the thermal storage medium comprises glycol.
3. The method of claim 1, wherein said predicting step comprises resolving the required concentration of the thermal storage medium to be a concentration of the thermal storage medium corresponding to the lower of said historical temperature data and said predicted temperature data.
4. The method of claim 1, wherein said determining step comprises:
- (a) transmitting a signal of a waveform in a portion of the thermal storage medium; and
- (b) receiving the signal of the waveform disposed at a pulse width and looking up the concentration of the thermal storage medium on a signal pulse width-thermal storage medium concentration relationship based on said pulse width.
5. The method of claim 4, wherein the waveform is a square waveform.
6. The method of claim 1, wherein the locale is specified by a zip code.
7. A method for determining the concentration of a solute of a thermal storage medium using a pair of electrodes of a glycol concentration sensor, said method comprising:
- (a) transmitting a signal of a waveform through a first electrode of the pair of electrodes in a portion of the thermal storage medium, the concentration of the solute of the thermal storage medium being a function of the electrical conductivity of the signal within the thermal storage medium; and
- (b) receiving the signal of the waveform disposed at a pulse width through a second electrode of the pair of electrodes and looking up the concentration of the solute in the thermal storage medium based on a signal pulse width-solute concentration in thermal storage medium relationship corresponding to said pulse width.
8. The method of claim 7, wherein the thermal storage medium is a glycol-water mixture.
9. The method of claim 7, wherein said signal pulse width-solute concentration in thermal storage medium relationship is established using a method comprising establishing said signal pulse width-solute concentration in thermal storage medium relationship using at least readings of signal pulse width of at least two different solute concentrations in thermal storage medium.
10. The method of claim 7, wherein the waveform is a square waveform.
11. The method of claim 7, wherein if said receiving step fails to receive the signal of the waveform within a predetermined amount of time, it is said that there is an insufficient level of the thermal storage medium.
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- Agri-Energy Research LLC, https://web.archive.org/web/20220928220625/https://www.agrienergyresearch.com/coolant-correction-calculator, Sep. 28, 2022 (Year: 2022).
Type: Grant
Filed: Apr 17, 2023
Date of Patent: Aug 5, 2025
Patent Publication Number: 20240344781
Assignee: Intellihot, Inc. (Galesburg, IL)
Inventors: Sridhar Deivasigamani (Mundelein, IL), Sivaprasad Akasam (Round Rock, TX)
Primary Examiner: Eric S Ruppert
Application Number: 18/135,355
International Classification: F28D 20/00 (20060101); G05B 13/04 (20060101);